Brain-body interactions during bipedalism
Brain-body interactions during bipedalism
批准号:
RGPIN-2020-05234
负责人:
DalMaso, Fabien
金额:
$2.4万
依托单位:
依托单位国家:
加拿大
项目类别:
Discovery Grants Program - Individual
财政年份:
2022
资助国家:
加拿大
项目状态:
已结题
起止时间:
2022-01-01 至 2023-12-31
中文摘要
两足行走,包括直立,步态启动和步态,是人类最重要的成就之一,是大多数日常生活活动的核心。今天,我们对两足动物运动控制的理解主要来自动物研究,强调脊髓中枢模式发生器的关键作用。然而,人类的两足行走是由于皮质和脊髓网络之间复杂的动态相互作用,其中皮质机制占主导地位。皮层振荡代表了运动任务期间大脑神经生理学的显著特征,并在大脑功能中发挥重要作用,以通过它们的同步在远程神经网络之间交换信息。有趣的是,皮质振荡也与生物力学运动输出同步。事实上,显着的一致性已被证明之间的皮质振荡从运动区和运动学以及肌肉协同作用,在手动活动和扰动姿势任务,分别。因此,皮层振荡直接介导人类运动的神经表征。本研究计划的长期目标是评估动态自然运动动作过程中皮层振荡和运动输出之间的耦合。为了实现这一目标,短期目标是进行一系列研究,采用创新的方法,结合神经科学和生物力学,以调查在两足动物的脑-体耦合。主要是,我们将调查皮质运动和皮质协同一致性在直立,步态,步态启动。我们假设脑-体相互作用对两足行走的控制起着关键作用,并期望:1)感觉运动皮层θ波振荡与压力中心和质心运动学具有显著的一致性(皮质运动学相干性)分别在直立和步态; 2)初级运动皮层γ-波段振荡将与肌肉协同作用表现出显著的一致性(皮质协同一致性); 3)需要增加运动任务需求的实验条件将影响皮质生物力学一致性的大小。参与者将配备脑电图帽、肌电图电极和反射皮肤标记。将使用测力平台或仪器跑步机记录反作用力。受试者将直立,行走,并在正常和扰动的实验条件下开始行走,以增加运动任务的需求。神经影像学和生物力学的结合在加拿大是独一无二的。我们的神经生物力学方法将促进对两足动物皮层振荡机制的发现,并加速运动辅助设备创新技术的发展:脑机接口,动力神经假体和机器人外骨骼的前馈控制。
英文摘要
Bipedalism, which includes standing upright, gait initiation, and gait, is one of the most important achievements of the Human species and is central to most daily-living activities. Today, our comprehension of motor control during bipedalism mostly comes from animal studies highlighting a key role of spinal cord central pattern generators. However, human bipedalism results from complex dynamic interactions between cortical and spinal networks with a dominance of cortical mechanisms. Cortical oscillations represent a salient feature of brain neurophysiology during motor tasks and play a major role in brain functions to exchange information between remote neural networks through their synchronization. Interestingly, cortical oscillations also synchronize with biomechanical movement outputs. Indeed, significant coherence has been evidenced between cortical oscillations from motor areas and movement kinematics as well as muscle synergies during manual activities and perturbation postural task, respectively. Consequently, cortical oscillations directly mediate neural representations of human motion. The long-term objective of this research program is to evaluate the coupling between cortical oscillations and movement outputs during dynamic natural motor actions. To achieve this objective, the short-term goals are to conduct a series of studies employing an innovative approach that combines neuroscience and biomechanics to investigate brain-body coupling during bipedalism. Mainly, we will investigate corticokinematic and corticosynergy coherence during standing upright, gait, and gait initiation. We hypothesize that brain-body interactions have a key role for the control of bipedalism and expect that: 1) sensorimotor cortex theta-band oscillations will show significant coherence with center of pressure and center of mass kinematics (corticokinematic coherence) during standing upright and gait, respectively; 2) primary motor cortex gamma-band oscillations will show significant coherence with muscle synergies (corticosynergy coherence) during gait and gait initiation, respectively; 3) experimental conditions requiring increased motor task demands will affect the magnitude of cortico-biomechanical coherence. Participants will be equipped with an electroencephalographic cap, electromyographic electrodes, and reflective skin markers. Reaction forces will be recorded using force platforms or an instrumented treadmill. Participants will stand upright, walk, and initiate walk under normal and perturbed experimental conditions to increase the demand of motor tasks. The combination of neuroimaging and biomechanics is unique in Canada. Our neuro-biomechanical approach will foster discoveries on cortical oscillatory mechanisms underlying bipedalism and hasten the development of innovative technologies for movement assistive devices: brain computer interfaces, powered neuro-prostheses, and feed-forward controls for robotic exoskeletons.
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Brain-body interactions during bipedalism
-
批准号:RGPIN-2020-05234
-
项目类别:Discovery Grants Program - Individual
-
资助金额:$2.4万
-
财政年份:2021
-
负责人:DalMaso, Fabien
-
依托单位:
Brain-body interactions during bipedalism
-
批准号:RGPIN-2020-05234
-
项目类别:Discovery Grants Program - Individual
-
资助金额:$2.4万
-
财政年份:2020
-
负责人:DalMaso, Fabien
-
依托单位:
Brain-body interactions during bipedalism
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批准号:DGECR-2020-00098
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项目类别:Discovery Launch Supplement
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资助金额:$0.91万
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财政年份:2020
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负责人:DalMaso, Fabien
-
依托单位:
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